Glucocorticoid-dependent REDD1 expression reduces muscle metabolism to enable adaptation under energetic stress

Florian A Britto1, Fabienne Cortade1, Yassine Belloum1

  • 1DMEM, Univ. Montpellier, INRA, Montpellier, France.

BMC Biology
|June 14, 2018
PubMed
Abstract

Insights

The REDD1 protein unexpectedly protects skeletal muscle from loss during energy stress by reducing energy consumption. This finding reveals a new mechanism for muscle adaptation in conditions like fasting and hypoxia.

Area of Science:

  • Cell Biology
  • Metabolism
  • Muscle Physiology

Background:

  • Skeletal muscle atrophy is linked to chronic diseases and mortality.
  • The REDD1 protein typically inhibits muscle mass by blocking the Akt/mTORC1 pathway.
  • REDD1 expression increases with glucocorticoids during energy stress.

Purpose of the Study:

  • Investigate the role of REDD1 in muscle adaptation during energetic stress.
  • Clarify the mechanism by which REDD1 influences muscle mass and energy metabolism.
  • Explore REDD1's potential role in diseases with altered energy metabolism.

Main Methods:

  • Assessed REDD1's effect on muscle loss during hypoxia and fasting.
  • Measured oxygen and ATP consumption in skeletal muscle.
  • Examined the impact of REDD1 on mitochondrial-associated endoplasmic reticulum membranes (MAMs) and related signaling pathways (Akt/Hexokinase II, PRAS40/mTORC1).

Main Results:

  • REDD1 limits muscle loss during energetic stress by reducing glycogen depletion and AMPK activation.
  • REDD1 decreases skeletal muscle O2 and ATP consumption by reducing MAMs.
  • REDD1 inhibits ATP-consuming processes like glycogen storage and protein synthesis via MAMs signaling disruption.

Conclusions:

  • REDD1 is essential for muscle adaptation to energy stress by negatively regulating energy expenditure.
  • This study uncovers a novel REDD1-dependent mechanism linking mitochondrial respiration and anabolic processes.
  • Findings suggest REDD1's importance in pathologies like cancer, diabetes, and Parkinson's disease.

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